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Import both the public and private header into impls when the private is needed. Also update the tests to use more complete imports. PiperOrigin-RevId: 671388271
163 lines
6.4 KiB
Objective-C
163 lines
6.4 KiB
Objective-C
// Protocol Buffers - Google's data interchange format
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// Copyright 2015 Google Inc. All rights reserved.
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//
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file or at
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// https://developers.google.com/open-source/licenses/bsd
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#import <XCTest/XCTest.h>
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#import "GPBTestUtilities.h"
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#import "GPBWellKnownTypes.h"
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#import "objectivec/Tests/AnyTest.pbobjc.h"
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// Nanosecond time accuracy
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static const NSTimeInterval kTimeAccuracy = 1e-9;
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@interface WellKnownTypesTest : XCTestCase
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@end
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@implementation WellKnownTypesTest
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- (void)testTimeStamp {
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// Test negative and positive values.
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NSTimeInterval values[] = {
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-428027599.483999967, -1234567.0, -0.5, 0, 0.75, 54321.0, 2468086, 483999967};
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for (size_t i = 0; i < GPBARRAYSIZE(values); ++i) {
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NSTimeInterval value = values[i];
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// Test Creation - date.
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NSDate *date = [NSDate dateWithTimeIntervalSince1970:value];
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GPBTimestamp *timeStamp = [[GPBTimestamp alloc] initWithDate:date];
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XCTAssertGreaterThanOrEqual(timeStamp.nanos, 0, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertLessThan(timeStamp.nanos, 1e9, @"Offset %f - Date: %@", (double)value, date);
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// Comparing timeIntervals instead of directly comparing dates because date
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// equality requires the time intervals to be exactly the same, and the
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// timeintervals go through a bit of floating point error as they are
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// converted back and forth from the internal representation.
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XCTAssertEqualWithAccuracy(value, timeStamp.date.timeIntervalSince1970, kTimeAccuracy,
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@"Offset %f - Date: %@", (double)value, date);
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[timeStamp release];
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// Test Creation - timeIntervalSince1970.
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timeStamp = [[GPBTimestamp alloc] initWithTimeIntervalSince1970:value];
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XCTAssertGreaterThanOrEqual(timeStamp.nanos, 0, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertLessThan(timeStamp.nanos, 1e9, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertEqualWithAccuracy(value, timeStamp.timeIntervalSince1970, kTimeAccuracy,
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@"Offset %f - Date: %@", (double)value, date);
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[timeStamp release];
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// Test Mutation - date.
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timeStamp = [[GPBTimestamp alloc] init];
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timeStamp.date = date;
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XCTAssertGreaterThanOrEqual(timeStamp.nanos, 0, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertLessThan(timeStamp.nanos, 1e9, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertEqualWithAccuracy(value, timeStamp.date.timeIntervalSince1970, kTimeAccuracy,
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@"Offset %f - Date: %@", (double)value, date);
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[timeStamp release];
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// Test Mutation - timeIntervalSince1970.
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timeStamp = [[GPBTimestamp alloc] init];
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timeStamp.timeIntervalSince1970 = value;
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XCTAssertGreaterThanOrEqual(timeStamp.nanos, 0, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertLessThan(timeStamp.nanos, 1e9, @"Offset %f - Date: %@", (double)value, date);
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XCTAssertEqualWithAccuracy(value, timeStamp.date.timeIntervalSince1970, kTimeAccuracy,
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@"Offset %f - Date: %@", (double)value, date);
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[timeStamp release];
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}
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}
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- (void)testDuration {
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// Test negative and positive values.
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NSTimeInterval values[] = {-1000.0001, -500.0, -0.5, 0, 0.75, 1000.0, 2000.0002};
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for (size_t i = 0; i < GPBARRAYSIZE(values); ++i) {
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NSTimeInterval value = values[i];
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// Test Creation.
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GPBDuration *duration = [[GPBDuration alloc] initWithTimeInterval:value];
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XCTAssertEqualWithAccuracy(value, duration.timeInterval, kTimeAccuracy, @"For interval %f",
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(double)value);
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if (value > 0) {
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XCTAssertGreaterThanOrEqual(duration.seconds, 0, @"For interval %f", (double)value);
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XCTAssertGreaterThanOrEqual(duration.nanos, 0, @"For interval %f", (double)value);
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} else {
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XCTAssertLessThanOrEqual(duration.seconds, 0, @"For interval %f", (double)value);
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XCTAssertLessThanOrEqual(duration.nanos, 0, @"For interval %f", (double)value);
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}
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[duration release];
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// Test Mutation.
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duration = [[GPBDuration alloc] init];
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duration.timeInterval = value;
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XCTAssertEqualWithAccuracy(value, duration.timeInterval, kTimeAccuracy, @"For interval %f",
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(double)value);
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if (value > 0) {
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XCTAssertGreaterThanOrEqual(duration.seconds, 0, @"For interval %f", (double)value);
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XCTAssertGreaterThanOrEqual(duration.nanos, 0, @"For interval %f", (double)value);
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} else {
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XCTAssertLessThanOrEqual(duration.seconds, 0, @"For interval %f", (double)value);
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XCTAssertLessThanOrEqual(duration.nanos, 0, @"For interval %f", (double)value);
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}
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[duration release];
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}
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}
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- (void)testAnyHelpers {
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// Set and extract covers most of the code.
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AnyTestMessage *subMessage = [AnyTestMessage message];
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subMessage.int32Value = 12345;
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AnyTestMessage *message = [AnyTestMessage message];
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NSError *err = nil;
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message.anyValue = [GPBAny anyWithMessage:subMessage error:&err];
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XCTAssertNil(err);
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NSData *data = message.data;
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XCTAssertNotNil(data);
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AnyTestMessage *message2 = [AnyTestMessage parseFromData:data error:&err];
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XCTAssertNil(err);
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XCTAssertNotNil(message2);
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XCTAssertTrue(message2.hasAnyValue);
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AnyTestMessage *subMessage2 =
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(AnyTestMessage *)[message.anyValue unpackMessageClass:[AnyTestMessage class] error:&err];
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XCTAssertNil(err);
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XCTAssertNotNil(subMessage2);
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XCTAssertEqual(subMessage2.int32Value, 12345);
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// NULL errorPtr in the two calls.
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message.anyValue = [GPBAny anyWithMessage:subMessage error:NULL];
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NSData *data2 = message.data;
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XCTAssertEqualObjects(data2, data);
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AnyTestMessage *subMessage3 =
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(AnyTestMessage *)[message.anyValue unpackMessageClass:[AnyTestMessage class] error:NULL];
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XCTAssertNotNil(subMessage3);
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XCTAssertEqualObjects(subMessage2, subMessage3);
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// Try to extract wrong type.
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GPBTimestamp *wrongMessage =
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(GPBTimestamp *)[message.anyValue unpackMessageClass:[GPBTimestamp class] error:&err];
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XCTAssertNotNil(err);
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XCTAssertNil(wrongMessage);
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XCTAssertEqualObjects(err.domain, GPBWellKnownTypesErrorDomain);
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XCTAssertEqual(err.code, GPBWellKnownTypesErrorCodeTypeURLMismatch);
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wrongMessage = (GPBTimestamp *)[message.anyValue unpackMessageClass:[GPBTimestamp class]
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error:NULL];
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XCTAssertNil(wrongMessage);
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}
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@end
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